RIF1 promotes human epithelial ovarian cancer growth and progression via activating human telomerase reverse transcriptase expression

被引:20
作者
Liu, Yong-Bin [1 ,2 ]
Mei, Ying [1 ,2 ]
Long, Jing [3 ]
Zhang, Yu [3 ]
Hu, Dong-Li [1 ,2 ]
Zhou, Hong-Hao [1 ,2 ]
机构
[1] Cent South Univ, Xiangya Hosp, Dept Clin Pharmacol, 110 Xiang Ya Rd, Changsha 410008, Hunan, Peoples R China
[2] Cent South Univ, Hunan Key Lab Pharmacogenet, Inst Clin Pharmacol, Changsha 410078, Hunan, Peoples R China
[3] Cent South Univ, Xiangya Hosp, Dept Obstet & Gynecol, Changsha 410008, Hunan, Peoples R China
基金
中国国家自然科学基金;
关键词
Ovarian cancer; RIF1; Telomerase reverse transcriptase; hTERT; POOR-PROGNOSIS; IN-VITRO; HTERT; CELLS; INVASION; GENE; PLURIPOTENCY; METASTASIS; RESISTANCE; REGULATOR;
D O I
10.1186/s13046-018-0854-8
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Background: Human telomerase reverse transcriptase (hTERT) is highly expressed in over 80% of tumors, including human epithelial ovarian cancer (EOC). However, the mechanisms through which hTERT is up-regulated in EOC and promotes tumor progression remain unclear. The aim of this study is to identify RIF1 as a novel molecular target that modulate hTERT signaling and EOC growth. Methods: RIF1 expression in ovarian cancer, benign and normal ovarian tissues was examined by immunohistochemistry. The biological role of RIF1 was revealed by MTS, colony formation and sphere formation assays. Luciferase reporter assay and chromatin immunoprecipitation (CHIP) assay were used to verify RIF1 as a novel hTERT promoter-binding protein in EOC cells. The role of RIF1 on tumorigenesis in vivo was detected by the xenograft model. Results: RIF1 expression is upregulated in EOC tissues and is closely correlated with FIGO stage and prognosis of EOC patients. Functionally, RIF1 knockdown suppressed the expression and promoter activity of hTERT and consequently inhibited the growth and CSC-like traits of EOC cells. RIF1 knockdown also inhibited tumorigenesis in xenograft model. RIF1 overexpression had the opposite effect. Luciferase reporter assay and ChIP assay verified RIF1 directly bound to hTERT promoter to upregulate its expression. The rescue experiments suggested hTERT overexpression rescued the inhibition of EOC cell growth and CSC-like traits mediated by RIF1 knockdown. Consistently, hTERT knockdown abrogated the RIF1-induced promotion of EOC cell growth and CSC-like traits. Conclusions: RIF1 promotes EOC progression by activating hTERT and the RIF1/hTERT pathway may be a potential therapeutic target for EOC patients.
引用
收藏
页数:15
相关论文
共 43 条
  • [1] Identification and characterisation of mRif1: A mouse telomere-associated protein highly expressed in germ cells and embryo-derived pluripotent stem cells
    Adams, IR
    McLaren, A
    [J]. DEVELOPMENTAL DYNAMICS, 2004, 229 (04) : 733 - 744
  • [2] Reversal of DDK-Mediated MCM Phosphorylation by Rif1-PP1 Regulates Replication Initiation and Replisome Stability Independently of ATR/Chk1
    Alver, Robert C.
    Chadha, Gaganmeet Singh
    Gillespie, Peter J.
    Blow, J. Julian
    [J]. CELL REPORTS, 2017, 18 (10): : 2508 - 2520
  • [3] Sox2 maintains self renewal of tumor-initiating cells in osteosarcomas
    Basu-Roy, U.
    Seo, E.
    Ramanathapuram, L.
    Rapp, T. B.
    Perry, J. A.
    Orkin, S. H.
    Mansukhani, A.
    Basilico, C.
    [J]. ONCOGENE, 2012, 31 (18) : 2270 - 2282
  • [4] Highly tumorigenic lung cancer CD133+ cells display stem-like features and are spared by cisplatin treatment
    Bertolini, Giulia
    Roz, Luca
    Perego, Paola
    Tortoreto, Monica
    Fontanella, Enrico
    Gatti, Laura
    Pratesi, Graziella
    Fabbri, Alessandra
    Andriani, Francesca
    Tinelli, Stella
    Roz, Elena
    Caserini, Roberto
    Lo Vullo, Salvatore
    Camerini, Tiziana
    Mariani, Luigi
    Delia, Domenico
    Calabro, Elisa
    Pastorino, Ugo
    Sozzi, Gabriella
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2009, 106 (38) : 16281 - 16286
  • [5] STRUCTURE AND FUNCTION OF TELOMERES
    BLACKBURN, EH
    [J]. NATURE, 1991, 350 (6319) : 569 - 573
  • [6] CARMA3 Represses Metastasis Suppressor NME2 to Promote Lung Cancer Stemness and Metastasis
    Chang, Yi-Wen
    Chiu, Ching-Feng
    Lee, Kang-Yun
    Hong, Chih-Chen
    Wang, Yi-Yun
    Cheng, Ching-Chia
    Jan, Yi-Hua
    Huang, Ming-Shyan
    Hsiao, Michael
    Ma, Jui-Ti
    Su, Jen-Liang
    [J]. AMERICAN JOURNAL OF RESPIRATORY AND CRITICAL CARE MEDICINE, 2015, 192 (01) : 64 - 75
  • [7] Snail Driving Alternative Splicing of CD44 by ESRP1 Enhances Invasion and Migration in Epithelial Ovarian Cancer
    Chen, Le
    Yao, Ying
    Sun, Lijuan
    Zhou, Jiajia
    Miao, Minmin
    Luo, Shujuan
    Deng, Guanming
    Li, Junjun
    Wang, Jing
    Tang, Jie
    [J]. CELLULAR PHYSIOLOGY AND BIOCHEMISTRY, 2017, 43 (06) : 2489 - 2504
  • [8] hTERT mediates norepinephrine-induced Slug expression and ovarian cancer aggressiveness
    Choi, M. J.
    Cho, K. H.
    Lee, S.
    Bae, Y. J.
    Jeong, K. J.
    Rha, S. Y.
    Choi, E. J.
    Park, J. H.
    Kim, J. M.
    Lee, J-S
    Mills, G. B.
    Lee, H. Y.
    [J]. ONCOGENE, 2015, 34 (26) : 3402 - 3412
  • [9] Rif1 Maintains Telomere Length Homeostasis of ESCs by Mediating Heterochromatin Silencing
    Dan, Jiameng
    Liu, Yifei
    Liu, Na
    Chiourea, Maria
    Okuka, Maja
    Wu, Tao
    Ye, Xiaoying
    Mou, Chunlin
    Wang, Lei
    Wang, Lingling
    Yin, Yu
    Yuan, Jihong
    Zuo, Bingfeng
    Wang, Fang
    Li, Zhiguo
    Pan, Xinghua
    Yin, Zhinan
    Chen, Lingyi
    Keefe, David L.
    Gagos, Sarantis
    Xiao, Andrew
    Liu, Lin
    [J]. DEVELOPMENTAL CELL, 2014, 29 (01) : 7 - 19
  • [10] Nuclear Architecture Organized by Rif1 Underpins the Replication-Timing Program
    Foti, Rossana
    Gnan, Stefano
    Cornacchia, Daniela
    Dileep, Vishnu
    Bulut-Karslioglu, Aydan
    Diehl, Sarah
    Buness, Andreas
    Klein, Felix A.
    Huber, Wolfgang
    Johnstone, Ewan
    Loos, Remco
    Bertone, Paul
    Gilbert, David M.
    Manke, Thomas
    Jenuwein, Thomas
    Buonomo, Sara C. B.
    [J]. MOLECULAR CELL, 2016, 61 (02) : 260 - 273